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Published on: December 8, 2015
Compositional architecting by additive manufacturing enables hardenable titanium alloys
Yaorui Ma1, Yongchun Zou2, Zhenghua Huang3
1Department of Mechanical and Aerospace Engineering, The Hong Kong University of Science and Technology, Kowloon, Hong Kong, China.
Abstract:
Titanium alloys (Ti-alloys) often suffer from limited strain-hardening capacity (typically <250 MPa), hindering broader adoption in demanding structural applications. This study reports a Ti-alloy with ultrahigh strain-hardening capability, enabled by a unique three-dimensional compositional architecture obtained by in-situ alloying via additive manufacturing (AM) using a mixture of Mo and Ti-6Al-4V (Ti64) powders. In particular, the 3D interconnected compositional waves generate three distinct microstructural regions in as-built components: α' martensite in low-Mo regions, metastable β phase in medium-Mo regions, and stable β phase in high-Mo regions. Each region activates unique deformation mechanisms - detwinning/retwinning, stress-induced martensitic transformation, and multiple systems-involved slipping, respectively - which together contribute to a synergistic enhancement in strain-hardening. The mechanical contrast among different regions generates heterogeneous deformation-induced (HDI) stresses, prompting a progressive, stepwise increase in hardening rate. This microstructural architecture enables an exceptional hardening increment of ~557 MPa (exceedingly twice the conventional limit in Ti-alloys (<250 MPa)), along with a remarkable combination of tensile strength (1236 MPa) and ductility (uniform elongation:11.5%). This work presents a powerful AM-enabled strategy for harnessing bulk compositional modulations for designing next-generation strain-hardenable Ti-alloys.

